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Infection and Immunity, July 2003, p. 4197-4200, Vol. 71, No. 7
0019-9567/03/$08.00+0 DOI: 10.1128/IAI.71.7.4197-4200.2003
Copyright © 2003, American Society for Microbiology. All Rights Reserved.
Division of Geographic Medicine and Infectious Diseases, Tufts-New England Medical Center and Howard Hughes Medical Institute, Boston, Massachusetts 02111
Received 13 January 2003/ Returned for modification 5 March 2003/ Accepted 3 April 2003
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The complete genomic sequences of a large number of bacteria led to the surprising realization that ClC type channels are found in prokaryotes as well as eukaryotes (11, 15). Unlike the eukaryotic ClC channels, several microbial ClC proteins could be overexpressed and purified sufficiently to enable the determination of their molecular structures. The X-ray structures of ClC channels from Salmonella enterica serovar Typhimurium and Escherichia coli were reported recently (5). As was predicted from earlier work (10, 18, 19), ClC channels were found to be "double-barreled." The channels are homodimers whose subunits each contain a conduction pore, an ion-binding site, and a potential gating region (5). Each subunit also contains 18 alpha helices that lie within, but often do not span the entire width of, the membrane. The end of one helix projects into the cytoplasm and may provide a means for cytoplasmic processes to regulate channel function.
The functions of prokaryotic ClC channels have only just begun to be investigated. Maduke et al. found that liposomes reconstituted with an E. coli ClC channel designated EriC exhibited selective anion permeability (15). Recently, it was reported that deletion of eriC and of mriT, which encodes another ClC orthologue in E. coli, rendered the resulting strain sensitive to extreme acid (pH 2.5) challenge (9). These deletions were also found to reduce the ability of membrane-localized antiporters to deliver substrates to and remove products from cytoplasmic decarboxylases. Decarboxylation, which consumes protons, is thought to protect cells from H+ ions that leak into cells in low-pH environments. The reduced activity of the decarboxylase-linked antiporter in ClC-deficient cells led Iyer et al. to propose that E. coli ClC channels function as electrical shunts to prevent the hyperpolarization of the inner membrane, which would otherwise occur as antiporters export positively charged substrates (9).
Vibrio cholerae is a gram-negative rod that causes the severe and sometimes lethal diarrheal disease cholera. V. cholerae is a facultative human pathogen that lives outside of human hosts, often in estuarine environments. Humans become infected with this organism by eating or drinking contaminated food or water. Following passage through the ordinarily acidic environment of the stomach, V. cholerae multiplies within the small bowel. The secretory diarrhea characteristic of cholera is caused by the activity of cholera toxin, a protein exotoxin secreted by V. cholerae during infection (14). This A-B subunit toxin causes secretion of Cl- by intestinal crypt cells and decreased absorption of NaCl by villus cells (22). Water exits from epithelial cells into the bowel lumen across an osmotic gradient, and diarrhea results.
Here we investigated the role of a V. cholerae ClC channel in acid resistance and intestinal colonization. The putative V. cholerae ClC channel was found to confer mild resistance to acid when pH was adjusted with HCl, but not with other acids. Surprisingly, a ClC channel deletion mutant exhibited enhanced intestinal colonization in infant mice.
V. cholerae ClC orthologue. Investigators who primarily study eukaryotic ClC channels identified a single unannotated open reading frame (ORF) in the V. cholerae genome that encoded a protein, VCA0526, with a mild degree of similarity to the eukaryotic ClC channels (11, 15). The ORF lies on the small V. cholerae chromosome and appears to be monocistronic, as the two ORFs that surround it are divergently transcribed. Pairwise BLAST analysis indicates that the putative amino acid sequence of VCA0526 is highly similar to those of EriC and MriT, the two E. coli ClC channel proteins (205 of 442 identities, E value of e-111 for EriC; 51 of 151 identities, E value of 2e-16 for MriT). Although the degree of similarity of VCA0526 to the human ClC channels is much less (e.g., 41 of 141 identities, E value of 1e-04 for the human ClC-1), there is near identity in four short stretches of the V. cholerae, E. coli, and human proteins in regions that were implicated as ion-binding sites in the crystal structure of EriC (5).
Acid sensitivity of a V. cholerae ClC mutant. YD1, a derivative of El Tor strain N16961 (the V. cholerae genome strain), was constructed by standard means (3, 4) to study whether VCA0526 played a role in V. cholerae acid resistance. In YD1, an in-frame deletion removes all but 10 codons of vca0526. This mutation, whose presence was confirmed by Southern analysis, does not impair growth in vitro in Luria broth (LB).
Several experimental methods for measuring acid resistance in bacteria have been reported (6). The extreme acid resistance test protocol is thought to mimic conditions present in the highly acidic environment of the human stomach. With this method, stationary-phase organisms are challenged in low-pH minimal media containing arginine or glutamate. While the viability of wild-type E. coli is not significantly reduced after a pH 2.5 challenge (9), we found that V. cholerae does not survive this acid challenge when the media contained either glutamate or arginine. Wild-type El Tor N16961 cells were not detectable after 1 h of incubation in pH 2.5 media. In fact, even in pH 5 minimal media supplemented with arginine or glutamate, approximately 1% of wild-type cells survived for 30 min (Fig. 1). These observations are consistent with clinical studies that suggest that the infectious dose of V. cholerae is much larger than that of pathogenic E. coli (21). We found that V. cholerae can survive a pH 5 acid challenge when minimal media are supplemented with 1% Casamino Acids. However, N16961 and YD1 did not differ in their sensitivity to challenge in pH 5 minimal media supplemented with 1% Casamino Acids (Fig. 1). This finding suggests that the putative V. cholerae ClC channel encoded by vca0526 may not function in stationary-phase cells in the same manner as the E. coli ClC channels.
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FIG. 1. Survival of stationary-phase N16961 and YD1 in pH 5.0 minimal medium (40 mM KCl, 80 mM KH2PO4, 1.7 mM sodium citrate, 20 mM glucose, using H3PO4 to adjust to pH 5.0) alone (MM), or minimal medium supplemented with 1 mM arginine, 1 mM glutamate, or 1% Casamino Acids (CAA) after 30 min. N16961 and YD1 were grown overnight in LB at 30°C and then diluted 1:100 in low-pH challenge media. After 30 min of incubation at room temperature, cell numbers were enumerated by plating. The percent survival was calculated by comparing the numbers of cells present at time zero and after 30 min in the challenge media. Approximately 5 x 107 cells were used in each assay. Each bar represents the mean with standard error for three to five independent experiments.
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0.5 and then were placed in lower-pH LB challenge media. Cell viability, determined by plating, was evaluated after 60 min of incubation in the low-pH challenge media. There was minimal reduction (approximately twofold) in N16961 viability after incubation at pH 4.4 when the challenge medium pH was adjusted with HCl (Fig. 2). In contrast, there was an
330-fold reduction in the viability of YD1 at this time. Acid sensitivity of YD1 was attributable to the deletion of vca0526, since the expression of this gene from a plasmid (pCLC) in YD1 restored the acid resistance of this strain (Fig. 2).
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FIG. 2. Survival of mid-log-phase N16961, YD1, and YD1(pClC) in LB adjusted to pH 4.4 with either HCl, H3PO4, or HNO3, or to pH 4.9 with an organic acid cocktail (OA) after 60 min of incubation. Cells were grown in LB to an optical density at 600 nm of around 0.5 and then spun down and resuspended in the challenge media. After 1 h of incubation at room temperature, cell numbers were enumerated by plating. The percent survival was calculated by comparing the numbers of cells present at time zero and after 60 min in the challenge media. OA challenge medium was LB supplemented with a 0.1x organic acid cocktail. The 1x cocktail was 87 mM acetic acid, 25 mM butyric acid, and 37 mM propionic acid. Approximately 8 x 107 cells were used in each assay. Each bar represents the mean with standard error for three to five independent experiments.
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Our findings reveal that the V. cholerae ClC channel encoded by vca0526, like the E. coli channels EriC and MriT, plays some role in acid resistance. However, while the mechanistic basis for the acid sensitivity of the E. coli mriT eriC deletion mutant is known, for YD1 it is not. Surprisingly, in our assay, the anion component of the acid used to adjust the pH of the challenge media influenced the acid sensitivity of YD1. Similar observations have not been reported for the E. coli ClC deletion mutant. Since we used exponentially growing cells and rich media to study acid sensitivity of the V. cholerae ClC channel deletion mutant, we cannot directly compare our findings with those obtained from studies of the acid sensitivity of the E. coli eriC deletion mutant. However, if the V. cholerae ClC channel acts as an electrical shunt, as was proposed for the E. coli ClC channel, it is difficult to explain the anion specificity that we observed. The amount of Cl- added to LB challenge media to adjust the pH to 4.4 does not significantly alter the Cl- concentration of the media.
Intestinal colonization of suckling mice by YD1.
We speculated that vca0526 might play some role in V. cholerae pathogenicity for two reasons. First, acid resistance may facilitate intestinal colonization. Second, V. cholerae might utilize a Cl- channel to detect and/or respond to the Cl--rich fluid in the intestinal lumen that is induced by cholera toxin. A competition assay was used to assess the intestinal colonization properties of YD1 in the suckling mouse model of cholera. In this assay, approximately equal numbers of YD1 (which is lacZ+) and NLAC, a lacZ derivative of N16961, were intragastrically inoculated into 4- to 5-day-old CD-1 mice. After
22 h of intraintestinal growth, the ratio of YD1 to NLAC in small bowel homogenates was determined. Surprisingly, the ratio of YD1 to NLAC in intestinal homogenates was significantly greater than 1; in two independent experiments, the ratio of YD1 to NLAC in the homogenates varied from
9 to 16 (Table 1). This was not the case with in vitro competition assays. When the identical inocula used for the intestinal colonization assays were inoculated into LB, YD1 did not outcompete NLAC; instead, the ratio of YD1 to NLAC cells after these in vitro competition assays was close to one (Table 1).
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TABLE 1. Intestinal colonization of YD1 and N16961 in suckling micea
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FIG. 3. Recovery of NLAC and YD1 in segments of the small intestines of suckling mice. Cultures of NLAC and YD1 were grown overnight at 30°C in LB and then diluted 1:1,000. Suckling mice were intragastrically inoculated with 7.0 x 105 to 8.0 x 105 CFU of either NLAC or YD1. After 5 h of intraintestinal growth, the mice were sacrificed. The small intestines were removed and were divided into three segments of equal length. After homogenization in LB, the numbers of CFU in each segment were determined by plating. The mean numbers of CFU recovered from the entire small intestine were 1.8 x 104 for NLAC and 1.1 x 105 for YD1. Each bar represents the mean percentage of CFU found in each segment compared to the total CFU found in the entire small intestine. The error bars represent the standard errors of the means. There were eight mice for each strain in two independent experiments.
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This work was supported by NIH grant AI-42347 and HHMI.
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contains a hybrid genome derived from tandemly integrated elements. Proc. Natl. Acad. Sci. USA 97:8572-8577.
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